Title :
Stochastic traffic engineering, with applications to network revenue management
Author :
Mitra, Debasis ; Wang, Qiong
Author_Institution :
Lucent Technol. Bell Labs., Murray Hill, NJ, USA
Abstract :
A stochastic traffic engineering framework for optimizing bandwidth provisioning and path selection in networks is presented. The objective is to maximize revenue from serving demands, which are uncertain and specified by probability distributions. We consider a two-tier market structure, where demands in the two markets are associated with different unit revenues and uncertainties. Based on mean-risk analysis, the optimization model enables a carrier to maximize mean revenue and contain the risk that the revenue falls below an acceptable level. Our framework is intended for off-line traffic engineering design, which takes a centralized view of network topology, link capacity, and demand. We obtain conditions under which the optimization problem is an instance of convex programming and therefore efficiently solvable. We derive properties of the optimal solution for the special case of Gaussian distributions of demands. We focus on the impact of demand variability on various aspects of traffic engineering, such as link utilization, routing, capacity provisioning, and total revenue.
Keywords :
Gaussian distribution; convex programming; mathematical programming; network topology; stochastic processes; telecommunication links; telecommunication network management; telecommunication network routing; telecommunication traffic; Gaussian distribution; bandwidth provisioning optimization; capacity provisioning; convex programming; demand variability impact; different unit revenue; link capacity; link utilization; mathematical programming; mean revenue maximization; mean-risk analysis; network path selection; network revenue management; network topology; off-line traffic engineering design; optimization model; probability distribution; routing; serving demand uncertainty; stochastic traffic engineering framework; two-tier market structure; Bandwidth; Design engineering; Engineering management; Network topology; Probability distribution; Risk analysis; Stochastic processes; Telecommunication traffic; Traffic control; Uncertainty;
Conference_Titel :
INFOCOM 2003. Twenty-Second Annual Joint Conference of the IEEE Computer and Communications. IEEE Societies
Print_ISBN :
0-7803-7752-4
DOI :
10.1109/INFCOM.2003.1208691